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Algorithm development for a two-stream irradiance model for layered environmental media.

机译:分层环境介质的两流辐照度模型的算法开发。

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摘要

The transfer of solar radiation is the prime physical process that drives the circulation of the atmosphere and oceans. Consequently, an evaluation of the modeling of the physical processes of radiative transfer is very important to the understanding of the phenomena resulting from this transfer. The primary goal of this research was to develop a model that describes the radiative transfer of the sun's electromagnetic energy utilizing a solution to the modified two-flow equations that generated fast and accurate estimates of light distributions in any layered media, while retaining the essence of the physics that have the greatest impact on the radiative transfer model. A model was developed which solves the modified two-flow equations by an iterative technique. This model is unique in that it uses an iterative method to converge on a solution to the layered, two-flow radiative transfer equations, it accounts for diffuse and specular (collimated) irradiance below the water's surface and utilizes boundary conditions that allow the absorption, backscatter, beam attenuation, and conversion (from specular irradiance to diffuse irradiance) coefficients to vary as a function of depth. The model utilizes constant absorption and backscatter coefficients in each layer. The upwelling irradiance at the surface and the reflectances both below and above the water's surface were compared with values obtained from the two-flow computer model described by Ma (1997) that assumes constant absorption and backscatter throughout the water column to within ±0.44% RMS error. The model was compared with the layered, singly scattered irradiance (SSI) model by Philpot (1987) to within ±0.10% RMS error.
机译:太阳辐射的转移是驱动大气和海洋循环的主要物理过程。因此,对辐射传递的物理过程建模的评估对于理解由该传递引起的现象非常重要。这项研究的主要目的是开发一个模型,该模型使用对修改后的两流方程的解来描述太阳电磁能的辐射传递,该方程可对任何层状介质中的光分布进行快速而准确的估计,同时保留其本质。对辐射传输模型影响最大的物理学。开发了一个模型,该模型通过迭代技术求解修正的两流方程。该模型的独特之处在于,它使用迭代方法收敛于分层的双流辐射传递方程的解,它解释了水面以下的漫反射和镜面(准直)辐照度,并利用了允许吸收的边界条件,背向散射,光束衰减和转换(从镜面辐照度到漫射辐照度)系数随深度而变化。该模型在每一层中利用恒定的吸收系数和反向散射系数。将表面上升流的辐照度和水面上下的反射率与从Ma(1997)描述的双流计算机模型获得的值进行比较,该模型假设整个水柱的吸收和背向散射均保持在±0.44%RMS之内错误。该模型与Philpot(1987)的分层,单散射辐照度(SSI)模型进行了比较,误差均在±0.10%以内。

著录项

  • 作者

    Huddleston, Lisa Hanson.;

  • 作者单位

    Florida Institute of Technology.;

  • 授予单位 Florida Institute of Technology.;
  • 学科 Environmental Sciences.; Physics Optics.; Remote Sensing.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 299 p.
  • 总页数 299
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境科学基础理论;光学;遥感技术;
  • 关键词

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